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High-throughput single-molecule fluorescence spectroscopy using parallel detection

机译:使用并行检测的高通量单分子荧光光谱

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Solution-based single-molecule fluorescence spectroscopy is a powerful new experimental approach with applications in all fields of natural sciences. The basic concept of this technique is to excite and collect light from a very small volume (typically femtoliter) and work in a concentration regime resulting in rare burst-like events corresponding to the transit of a single-molecule. Those events are accumulated over time to achieve proper statistical accuracy. Therefore the advantage of extreme sensitivity is somewhat counterbalanced by a very long acquisition time. One way to speed up data acquisition is parallelization. Here we will discuss a general approach to address this issue, using a multispot excitation and detection geometry that can accommodate different types of novel highly-parallel detector arrays. We will illustrate the potential of this approach with fluorescence correlation spectroscopy (FCS) and single-molecule fluorescence measurements obtained with different novel multipixel single-photon counting detectors.
机译:基于溶液的单分子荧光光谱法是一种功能强大的新实验方法,在自然科学的所有领域都有应用。该技术的基本概念是从很小的体积(通常是飞升)中激发并收集光,并在集中状态下工作,从而导致罕见的类似于单分子通过的突发事件。这些事件会随着时间累积以达到适当的统计准确性。因此,非常长的采集时间在某种程度上抵消了极高灵敏度的优势。加快数据采集速度的一种方法是并行化。在这里,我们将讨论使用多点激发和检测几何结构来解决此问题的通用方法,该结构可以容纳不同类型的新型高度平行的检测器阵列。我们将通过荧光相关光谱(FCS)和使用不同的新型多像素单光子计数检测器获得的单分子荧光测量值来说明这种方法的潜力。

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